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An empirical data driven based control loop performance assessment of multi-variate systems

机译:基于经验数据驱动的多元系统控制环性能评估

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In this paper, an alternative method for the assessment of multi-variate control loop performance without relying on any a priori knowledge of the interactor matrices is proposed. The performance of the control loop is calculated from data driven autoregressive moving average and prediction error model. It is observed that the limited data in scalar measure of covariance of predicted errors used for performance assessment results in incremental in initial part and tends to steady-state as time tends to infinity, but large number of samples gives risen in scalar measures and tends to infinity as time samples tends to infinity and therefore it becomes difficult to calculate the performance index. In this paper, the later problem is solved by considering initial part of scalar measures with steady value for next-to-next time samples to calculate the control-loop performance index which would be utilized to decide healthy working of the control loop. Simulation example is included to show the performance index of multi-variate control loop. The proposed method is compared with method available in the literature.
机译:在本文中,提出了一种不依赖于交互矩阵的任何先验知识而评估多变量控制回路性能的替代方法。根据数据驱动的自回归移动平均值和预测误差模型来计算控制回路的性能。可以观察到,用于性能评估的预测误差的协方差的标量度量中的有限数据会导致初始部分的增量,并且随着时间趋于无穷大而趋于稳定,但是大量样本使标量度量上升并且趋于于时间采样趋于无穷大,因此很难计算性能指标。在本文中,通过考虑下一个到下一个时间样本的标量量度的具有稳定值的初始部分来解决后一个问题,以计算控制环性能指标,该指标将用于决定控制环的正常工作。包括仿真示例以显示多变量控制回路的性能指标。将该方法与文献中的方法进行了比较。

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